Tumor-Derived Membrane Vesicles Restrain Migration in Gliomas By Altering Collective Polarization

Megha Jhunjhunwala1, Lin-Sheng Yu1, Ping-Chen Kuo1

  • 1National Tsing Hua University, Hsinchu 300044, Republic of China.

ACS Applied Bio Materials
|October 20, 2023
PubMed

Insights

Cell membrane vesicles (CMVs) regulate collective cell behavior. Glioma-derived CMVs reduced glioma cell migration and invasion, suggesting potential as adjuvant cancer therapy.

Area of Science:

  • Biomedical Engineering
  • Cellular Mechanobiology
  • Cancer Research

Background:

  • Mechanobiology's role in biomedical applications is underdeveloped.
  • Cell membrane vesicles (CMVs) are utilized as nanodrug carriers.
  • Gliomas are aggressive brain tumors with poor patient survival rates.

Purpose of the Study:

  • To investigate the use of CMVs as tactile cues for mechano-regulation of collective cell behaviors.
  • To explore the potential of glioma-derived CMVs in modulating glioma cell mechanics and behavior.
  • To assess the therapeutic implications of CMVs in glioma treatment.

Main Methods:

  • Utilized glioma- and microglia-derived CMVs as tactile cues.
  • Quantified traction stress and cell migration speed of glioma cell collectives.
  • Employed the cellular Potts model to elucidate migration speed changes.
  • Analyzed intracellular force modulation, cytoskeletal reorganization, and drug diffusion.

Main Results:

  • CMV application doubled glioma cell traction stress with increased concentration.
  • Glioma-CMVs constrained cell protrusions, reducing collective migration speed by ~40%.
  • Glioma-CMVs downregulated YAP-1, altered drug diffusion, and enhanced apoptosis in glioma spheroids.

Conclusions:

  • Glioma-derived CMVs can regulate collective cell mechanics and behavior.
  • CMVs show potential as an adjuvant therapy to restrict tumor invasion and improve reagent penetration.
  • Regulating cell mechanics via CMVs offers a foundation for novel therapeutic strategies in cancer.

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